Chen Yan-Feng, Chang Wen-Ru, Lee Chia-Jung, Chiu Chih-Wei
Department of Materials Science and Engineering, National Taiwan University of Science and Technology, Taipei 10607, Taiwan.
Ph.D. Program in Clinical Drug Development of Herbal Medicine, College of Pharmacy, Taipei Medical University, Taipei 11031, Taiwan.
J Mater Chem B. 2022 Dec 14;10(48):9974-9983. doi: 10.1039/d2tb02049a.
Triangular gold nanoplates (TAuNPs) were prepared by a one-step rapid growth method and then reduced and stabilized on two-dimensional nano mica nanoplatelets (NMPs). We also prepared TAuNP/NMP nanohybrids with a three-dimensional lightning-rod effect by oxidative etching. The surface of the delaminated NMPs (only 1 nm thick) is highly charged and can provide a large specific surface area; thus, it can be used as a substrate for the stable growth of gold nanoplates. In addition, by controlling relevant synthesis parameters, the edge length of the TAuNPs can be easily adjusted in the range of 30-90 nm. During reduction of the TAuNPs, the cationic surfactant cetyltrimethylammonium chloride was added as a protective agent to surround the TAuNPs; consequently, the surface was positively charged, which facilitates adsorption for detecting molecules with negative charges. When nanohybrids were used in surface-enhanced Raman spectroscopy (SERS) to detect adenine molecules, the limit of detection concentration was 10 M. The Raman enhancement factor was 5.7 × 10, and the relative standard deviation (RSD) was 9.8%. Finally, this method was applied to the biological detection of s, and the surface charge and hydrophilic properties of the material significantly improved the SERS signal of . The limit of detection concentration was 10 CFU mL, and the RSD was 11.2%. The TAuNP/NMP nanohybrids can provide very rapid and sensitive SERS detection of biomolecules.
通过一步快速生长法制备了三角形金纳米片(TAuNPs),然后在二维纳米云母纳米片(NMPs)上进行还原和稳定化处理。我们还通过氧化蚀刻制备了具有三维避雷针效应的TAuNP/NMP纳米杂化物。剥离的NMPs(仅1nm厚)表面带高电荷,可提供大的比表面积;因此,它可作为金纳米片稳定生长的基底。此外,通过控制相关合成参数,TAuNPs的边长可在30 - 90nm范围内轻松调节。在TAuNPs还原过程中,添加阳离子表面活性剂十六烷基三甲基氯化铵作为保护剂包围TAuNPs;因此,表面带正电荷,这有利于吸附带负电荷的检测分子。当纳米杂化物用于表面增强拉曼光谱(SERS)检测腺嘌呤分子时,检测浓度限为10 M。拉曼增强因子为5.7×10,相对标准偏差(RSD)为9.8%。最后,该方法应用于生物检测,材料的表面电荷和亲水性质显著提高了生物检测的SERS信号。检测浓度限为10 CFU mL,RSD为11.2%。TAuNP/NMP纳米杂化物可为生物分子提供非常快速和灵敏的SERS检测。